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两种线虫物种的研究表明,气候变化将对作物造成更大的损害。

Study on two nematode species suggests climate change will inflict greater crop damage.

机构信息

Department of Plant and Environmental Sciences, Clemson University, Clemson, SC, 29634, USA.

Rheinland-Pfälzische Technische Universität, Campus Landau, Wolfsmilchweg 7, 55262, Ingelheim, Germany.

出版信息

Sci Rep. 2023 Aug 30;13(1):14185. doi: 10.1038/s41598-023-41466-x.

Abstract

Food security has become one of the greatest challenges of the millennium and it is predicted to be exacerbated by climate change due to the adverse effects of soil temperature on crop productivity. Although plant-parasitic nematodes are one of the most important limiting factors of agricultural production, the fate of soil temperature in their biology is not fully understood. Here we present the effects of soil temperature on survival, reproduction, virulence, and disease severity from the perspective of two nematode species Rotylenchulus reniformis and Meloidogyne floridensis. The two nematode species were purposefully selected to represent a significant threat to annual and perennial crops. We employed novel approaches of direct as well as indirect heat exposure to evaluate nematode biology. The direct heat exposure assay involved the exposure of nematodes to hot water in a heating block at 32, 33, and 34 °C for 7 h, and subsequent evaluation of their survival after 18 h. The indirect exposure assay employed a commercial heat mat to raise soil temperatures to 32, 33, and 34 °C for 7 h during the daytime, and subsequent evaluation of nematode reproduction, virulence, and/or disease severity over the period of 6 weeks after inoculation. When directly exposed to hot water at 34 °C, the survival of R. reniformis increased by 10% while the survival of M. floridensis decreased by 12% relative to that at 32 °C. Upon increasing soil temperatures from 32 to 34 °C, the reproduction of R. reniformis and M. floridensis decreased by 49% and 53%, respectively. A significant reduction in the reproduction of M. floridensis occurred when soil temperature was increased from 33 to 34 °C, however, the same condition did not significantly affect R. reniformis reproduction suggesting the latter species has a greater ability to adapt to increasing soil temperature. Additionally, the virulence of R. reniformis was greater at 33 and 34 °C relative to that at 30 °C indicating increased aggressiveness of the nematode at higher soil temperatures. The virulence of M. floridensis appeared to be decreased as evident from increased root biomass when soil temperature was increased from 32 to 34 °C, however, the greater root biomass may have resulted from increased root galling at the higher temperatures. Results of the current study suggest that while higher soil temperatures due to climate change may lead to reduced nematode reproduction, crop losses will likely increase due to increased nematode virulence. Through the current study, we report practical evidence of the quantitative impact of climate change on the biology of plant-parasitic nematodes. Further studies involving a wider range of temperature and exposure time are needed to better understand nematode biology under climate change.

摘要

粮食安全已成为本世纪最大的挑战之一,预计气候变化将使这一问题更加恶化,因为土壤温度对作物生产力的不利影响。虽然植物寄生线虫是农业生产的最重要限制因素之一,但它们的生物学中土壤温度的命运还没有完全被理解。在这里,我们从两种线虫旋纹潜根线虫和佛罗里达南方根结线虫的角度,介绍了土壤温度对其存活、繁殖、毒性和病害严重程度的影响。这两种线虫被专门选择来代表对一年生和多年生作物的重大威胁。我们采用了直接和间接加热暴露的新方法来评估线虫生物学。直接加热暴露试验涉及在加热块中将线虫暴露于 32、33 和 34°C 的热水中 7 小时,然后在 18 小时后评估它们的存活情况。间接暴露试验使用商业加热垫将土壤温度升高到 32、33 和 34°C,持续 7 小时,白天,然后在接种后 6 周内评估线虫繁殖、毒性和/或病害严重程度。当直接暴露于 34°C 的热水中时,旋纹潜根线虫的存活率增加了 10%,而佛罗里达南方根结线虫的存活率则降低了 12%。当土壤温度从 32°C 升高到 34°C 时,旋纹潜根线虫和佛罗里达南方根结线虫的繁殖力分别降低了 49%和 53%。当土壤温度从 33°C 升高到 34°C 时,佛罗里达南方根结线虫的繁殖力显著降低,但相同条件对旋纹潜根线虫的繁殖力没有显著影响,这表明后者具有更大的适应不断升高的土壤温度的能力。此外,旋纹潜根线虫在 33 和 34°C 时的毒性比 30°C 时更强,表明线虫在较高土壤温度下的攻击性增强。当土壤温度从 32°C 升高到 34°C 时,佛罗里达南方根结线虫的毒性似乎降低了,这可以从增加的根生物量中看出,但更高的根生物量可能是由于更高温度下根瘤的增加。目前的研究结果表明,由于气候变化导致的土壤温度升高可能会导致线虫繁殖减少,但由于线虫毒性增加,作物损失可能会增加。通过目前的研究,我们报告了气候变化对植物寄生线虫生物学的定量影响的实际证据。需要进行涉及更广泛温度和暴露时间的进一步研究,以更好地了解气候变化下的线虫生物学。

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